Department of Biotechnology, Dr. B. R Ambedkar National Institute of Technology, Jalandhar, 144 011, India.
Biotechnol Appl Biochem. 2021 Jun;68(3):421-444. doi: 10.1002/bab.1964. Epub 2020 Jun 11.
Depletion of fossil fuels and environmental concern has compelled us to search for alternative fuel. Hydrogen is considered as a dream fuel as it has high energy content (142 kJ g ) and is not chemically bound to carbon. At present, fossil fuel-based methods for producing hydrogen require high-energy input, which makes the processes expensive. The major processes for biohydrogen production are biophotolysis, microbial electrolysis, dark fermentation, and photofermentation. Fermentative hydrogen production has the additional advantages of potentially using various waste streams from different industries as feedstock. Novel strategies to enhance the productivity of fermentative hydrogen production include optimization in pretreatment methods, integrated fermentation systems (sequential and combined fermentation), use of nanoparticles as additives, metabolic engineering of microorganisms, improving the light utilization efficiency, developing more efficient photobioreactors, etc. More focus has been given to produce biohydrogen in a biorefinery approach in which, along with hydrogen gas, other metabolites (ethanol, butyric acid, 1,3-propanediol, etc.) are also produced, which have direct/indirect industrial applications. In present review, various emerging technologies that highlight biohydrogen production methods as effective and sustainable methods on a large scale have been critically reviewed. The possible future developments are also outlined.
化石燃料的枯竭和环境问题促使我们寻找替代燃料。氢气被认为是一种理想的燃料,因为它具有高能量含量(142kJ/g),而且与碳没有化学键合。目前,基于化石燃料的制氢方法需要高能量输入,这使得这些过程成本高昂。生物制氢的主要方法有生物光解、微生物电解、暗发酵和光发酵。发酵制氢具有潜在的优势,可以利用来自不同行业的各种废物流作为原料。提高发酵制氢生产力的新策略包括优化预处理方法、集成发酵系统(顺序和联合发酵)、使用纳米粒子作为添加剂、微生物代谢工程、提高光利用效率、开发更高效的光生物反应器等。人们更加关注在生物炼制方法中生产生物氢,在这种方法中,除了氢气外,还可以生产其他代谢物(乙醇、丁酸、1,3-丙二醇等),这些代谢物具有直接/间接的工业应用。在本综述中,我们批判性地回顾了各种新兴技术,这些技术强调了生物制氢方法作为一种大规模有效和可持续的方法。还概述了可能的未来发展。